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vPolyTan Polymer Surface Mount Chip Capacitors, …

Revision: 03-Jul-20201 Document Number: 40191 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT Polymer Surface - Mount chip Capacitors, Low ESR, Leadframeless Molded TypeLINKS TO ADDITIONAL RESOURCESPERFORMANCE / ELECTRICAL CHARACTERISTICSO perating Temperature: -55 C to +105 CCapacitance Range: 15 F to 470 FCapacitance Tolerance: 10 %, 20 % standardVoltage Rating: 16 VDC to 75 VDCFEATURES Ultra low ESR 100 % surge current tested Accelerated voltage conditioning High ripple current capability Stable capacitance in operating temperature range Better capacitance stability vs. frequency No wear out effect Molded case 7343 EIA size Terminations: wraparound 12 mm tape and 7" (178 mm) reel packaging per EIA-481 standard Material categorization: for definitions of compliance please see *This datasheet provides information about parts that are RoHS-compliant and / or parts that are non RoHS-compliant.

T59 www.vishay.com Vishay Revision: 27-Jun-2018 1 Document Number: 40191 For technical questions, contact: polytech@vishay.com THIS DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE

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Transcription of vPolyTan Polymer Surface Mount Chip Capacitors, …

1 Revision: 03-Jul-20201 Document Number: 40191 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE. THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT Polymer Surface - Mount chip Capacitors, Low ESR, Leadframeless Molded TypeLINKS TO ADDITIONAL RESOURCESPERFORMANCE / ELECTRICAL CHARACTERISTICSO perating Temperature: -55 C to +105 CCapacitance Range: 15 F to 470 FCapacitance Tolerance: 10 %, 20 % standardVoltage Rating: 16 VDC to 75 VDCFEATURES Ultra low ESR 100 % surge current tested Accelerated voltage conditioning High ripple current capability Stable capacitance in operating temperature range Better capacitance stability vs. frequency No wear out effect Molded case 7343 EIA size Terminations: wraparound 12 mm tape and 7" (178 mm) reel packaging per EIA-481 standard Material categorization: for definitions of compliance please see *This datasheet provides information about parts that are RoHS-compliant and / or parts that are non RoHS-compliant.

2 For example, parts with lead (Pb) terminations are not RoHS-compliant. Please see the information / tables in this datasheet for detailsAPPLICATIONS Decoupling, smoothing, filtering Bulk energy storage in Solid State Drives (SSD) Infrastructure equipment Storage and networking Computer motherboards Smartphones and tablets333 DDD3D3D ModelsModelsCalculatorsAvailableAvailabl eAvailableAvailableORDERING INFORMATIONT59EE337M016C0025 TYPECASECAPACITANCECAPACITANCEDC VOLTAGETERMINATION is expressed inpicofarads. The firsttwo digits are thesignificant third is thenumber of zerosto = 10 %M = 20 %This is expressedin volts. To complete thethree-digit block,zeros precede thevoltage decimal point isindicated by an R (6R3 = V)E = Sn / Pb solder / 7" (178 mm) reel C = 100 % tin / 7" (178 mm) reelMaximum100 kHz ESRin m DIMENSIONS in inches [millimeters]CASE CODEEIA SIZEH (MAX.)LWP1P2 (REF.) [ ] [ ] [ ] [ ] [ ]LAnode polarity markAnode terminationP1 WHP2P1 Cathode Revision: 03-Jul-20202 Document Number: 40191 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE.

3 THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT (1)Rating in development, contact factory for availabilityRATINGS AND CASE CODES (ESR m ) F 16 V30 V35 V50 V63 V75 V15EE (100)EE (100)22EE (100)EE (100)EE (100) (1)47EE (70, 55)EE (100)150EE (150, 75)220EE (25)330EE (25)470EE (25, 20)MARKINGSTANDARD RATINGSCAPACITANCE( F)CASECODEPART NUMBERMAX. DCLAT +25 C( A)MAX. DF AT +25 C120 Hz(%)MAX. ESR AT +25 C100 kHz(m ) ,100 kHzIRMS(A)HI TEMPERATURELOADMSLTEMPERATURE( C)TIME(h)16 VDC AT +105 C220 EET59EE227(1)016(2) (2) (2) (2) VDC AT +105 C150 EET59EE157M030(2) (2) VDC AT +105 C47 EET59EE476M035(2) (2) VDC AT +105 C22 EET59EE226M050(2) (2) VDC AT +105 C15 EET59EE156M063(2) (2) VDC AT +105 C15 EET59EE156M075(2) (1)T59EE226M075(2) Part number definitions:(1) Capacitance tolerance: K, M(2) Termination and packaging: E, C(1)Rating in development, contact factory for availability330 16 VPolarity markVishay logo+ + + Revision: 03-Jul-20203 Document Number: 40191 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE.

4 THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT TEMPERATURE DERATINGRECOMMENDED VOLTAGE DERATING GUIDELINES (for temperature below +105 C)CAPACITOR VOLTAGE RATINGOPERATING Title1st line2nd line2nd lineRated Voltage (%)Temperature ( C)100 Recommended maximumapplication voltage VR 16 VRated voltageRecommended maximumapplication voltage VR 10 VCAPACITANCE VS. FREQUENCY101001000100001001000 10 0001001000 10 000 100 000 1 000 000T59EE337M016E00251st line2nd line2nd lineCapacitance ( F)Frequency (Hz)CapacitanceIMPEDANCE AND ESR VS. 100 00010 000 000T59EE337M016E00251st line2nd line2nd lineImpedance / ESR ( )Frequency (Hz)ImpedanceESRPOWER DISSIPATIONCASE CODEMAXIMUM PERMISSIBLE POWER DISSIPATION AT +25 C (W) IN FREE PACKAGING QUANTITYCASE CODEUNITS PER 7" Revision: 03-Jul-20204 Document Number: 40191 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE.

5 THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT CHARACTERISTICSITEMCONDITIONPOST TEST PERFORMANCELife test at +105 C2000 h application of rated voltage at 105 C, MIL-STD-202 method 108 Capacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitsLeakage currentShall not exceed 300 % of initial limitShelf life test at +105 C2000 h no voltage applied at 105 C, MIL-STD-202 method 108 Capacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitsLeakage currentShall not exceed 300 % of initial limitHumidity testsAt 60 C / 90 % RH 500 h, no voltage appliedCapacitance change-20 % to +40 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 300 % of initial limitStability at low and high temperatures-55 CCapacitance changeWithin -20 % to 0 % of initial valueDissipation factorShall not exceed 150 % of initial limitLeakage currentn/a25 CCapacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitLeakage currentWithin initial limit85 CCapacitance changeWithin -0 % to +50 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 1000 % of initial value105 C Capacitance changeWithin -0 % to +50 % of initial valueDissipation factorWithin initial limitsLeakage currentShall not exceed 1000 % of initial limitsSurge voltage85 C, 1000 successive test cycles at of rated voltage in series with a 33 resistor at the rate of 30 s ON.

6 30 s OFFC apacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 300 % of initial limitShock (specified pulse)MIL-STD-202, method 213, condition E, 1000 g peakCapacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 300 % of initial limitVibrationMIL-STD-202, method 204, condition D, 10 Hz to 2000 Hz 20 g peakCapacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 300 % of initial limitThere shall be no mechanical or visual damage to capacitors testApply a pressure load of N for 10 s 1 s horizontally to the center of capacitor side bodyCapacitance changeWithin 20 % of initial valueDissipation factorWithin initial limitLeakage currentShall not exceed 300 % of initial limitPRODUCT INFORMATIONP olymer Asked Revision: 18-Jun-20201 Document Number: 40076 For technical questions, contact: DOCUMENT IS SUBJECT TO CHANGE WITHOUT NOTICE.

7 THE PRODUCTS DESCRIBED HEREIN AND THIS DOCUMENTARE SUBJECT TO SPECIFIC DISCLAIMERS, SET FORTH AT for Tantalum Solid Electrolyte chip CapacitorsWith Polymer CathodeINTRODUCTIONT antalum electrolytic capacitors are the preferred choice in applications where volumetric efficiency, stable electrical parameters, high reliability, and long service life are primary considerations. The stability and resistance to elevated temperatures of the tantalum/tantalum oxide/manganese dioxide system make solid tantalum capacitors an appropriate choice for today's Surface Mount assembly Sprague has been a pioneer and leader in this field, producing a large variety of tantalum capacitor types for consumer, industrial, automotive, military, and aerospace electronic is not found in its pure state. Rather, it is commonly found in a number of oxide minerals, often in combination with Columbium ore.

8 This combination is known as tantalite when its contents are more than one-half tantalum. Important sources of tantalite include Australia, Brazil, Canada, China, and several African countries. Synthetic tantalite concentrates produced from tin slags in Thailand, Malaysia, and Brazil are also a significant raw material for tantalum applications, and particularly capacitors , consume the largest share of world tantalum production. Other important applications for tantalum include cutting tools (tantalum carbide), high temperature super alloys, chemical processing equipment, medical implants, and military Sprague is a major user of tantalum materials in the form of powder and wire for capacitor elements and rod and sheet for high temperature vacuum BASICS OF TANTALUM CAPACITORSMost metals form crystalline oxides which are non-protecting, such as rust on iron or black oxide on copper.

9 A few metals form dense, stable, tightly adhering, electrically insulating oxides. These are the so-called valve metals and include titanium, zirconium, niobium, tantalum, hafnium, and aluminum. Only a few of these permit the accurate control of oxide thickness by electrochemical means. Of these, the most valuable for the electronics industry are aluminum and are basic to all kinds of electrical equipment, from radios and television sets to missile controls and automobile ignitions. Their function is to store an electrical charge for later consist of two conducting surfaces , usually metal plates, whose function is to conduct electricity. They are separated by an insulating material or dielectric. The dielectric used in all tantalum electrolytic capacitors is tantalum pentoxide compound possesses high-dielectric strength and a high-dielectric constant.

10 As capacitors are being manufactured, a film of tantalum pentoxide is applied to their electrodes by means of an electrolytic process. The film is applied in various thicknesses and at various voltages and although transparent to begin with, it takes on different colors as light refracts through it. This coloring occurs on the tantalum electrodes of all types of tantalum for rating, tantalum capacitors tend to have as much as three times better capacitance/volume efficiency than aluminum electrolytic capacitors . An approximation of the capacitance/volume efficiency of other types of capacitors may be inferred from the following table, which shows the dielectric constant ranges of the various materials used in each type. Note that tantalum pentoxide has a dielectric constant of 26, some three times greater than that of aluminum oxide. This, in addition to the fact that extremely thin films can be deposited during the electrolytic process mentioned earlier, makes the tantalum capacitor extremely efficient with respect to the number of microfarads available per unit volume.